MODIFICATION OF SOIL SUBGRADE WITH RECYCLED CONCRETE FINES FOR REDUCED ENVIRONMENTAL IMPACT

EP.
2025;
: рр. 276-287
1
Lviv Polytechnic National University, Department of Highways and Bridges
2
Lviv Polytechnic National University, Department of Highways and Bridges
3
Lviv Polytechnic National University, department of Highways and Bridges

Ukraine’s transition towards an energy-efficient economy, in the context of integration into the European area, represents a complex yet highly significant challenge. The post-war recovery of the country requires comprehensive modernisation of infrastructure in line with the principles of sustainable development and the standards of the European Union. Particular attention is drawn to the road construction sector, one of the most resource-intensive branches of the construction industry. Its development must be fully aligned with the goals of the European Green Deal, which encompass the reduction of greenhouse gas emissions related to the extraction and processing of natural resources, the implementation of circular economy principles, the promotion of economic growth through the increased use of anthropogenic waste as an alternative to primary raw materials, the mitigation of environmental impact, and the active deployment of environmentally driven technologies (Natsionalna ekonomichna stratehiia, 2021). As a result of the full-scale war in Ukraine, substantial volumes of mineral waste have accumulated from destroyed buildings and infrastructure, posing a serious challenge to the national resource management system. The efficient recycling of concrete debris is a key condition for reducing the environmental burden on the natural environment. This article presents research findings on the stabilisation of clayey soil using mineral fines derived from processed waste concrete, with the aim of improving the physico-mechanical properties of the subgrade in road construction.

 

1. Antoniuk, N., & Kostiuk, V. (2024). Recycling construction waste during the war in Ukraine. Actual Problems in Economics, 7(277), 130–142.  doi:  https://doi.org/10.32752/1993-6788-2024-1-277-130-142

2. Biswal, D. R., Sahoo, U. C., & Dash, S. R. (2019). Durability and shrinkage studies of cement stabilised granular lateritic soils. International Journal of Pavement Engineering, 20(12), 1451–1462. doi: https://doi.org/10.1080/10298436.2018.1433830

3. Bonifazi, G., Chiara, G., Roberta, P., & Silvia, S. (2025). Current trends and challenges in construction and demolition waste recycling. Current Opinion in Green and Sustainable Chemistry, 53, 101032 doi: https://doi.org/10.1016/j.cogsc.2025.101032

4. Bridgemohan, L., Leon, L. P., & Townsend, T. (2023). The Use of Aggregate Imaging Analysis for Comparing Geometric Properties of Aggregates Commonly Used in Bitumen Stabilized Pavement Layers. In Airfield and Highway Pavements 2023 (pp. 114-124). Retrieved from https://ascelibrary.org/doi/abs/10.1061/9780784484906.011

5. Circular Concrete (S3RoU) (2025). Retrieved from https://www.circular-concrete.in.ua

6. Connelly, J., Jensen, W., & Harmon, P. (2008). Proctor compaction testing. Nebraska Department of Transportation: Research Reports. Retrieved from https://digitalcommons.unl.edu/cgi/viewcontent.cgi?article=1050&context=ndor

7. Duque, J., Fuentes, W., Rey, S., & Molina, E. (2020). Effect of grain size distribution on California bearing ratio (CBR) and modified Proctor parameters for granular materials. Arabian Journal for Science and Engineering, 45(10), 8231–8239. doi: https://doi.org/10.1007/s13369-020-04673-6

8. El Hariri, A., Ahmed, A. E. E., & Kiss, P. (2023). Review on soil shear strength with loam sand soil results using direct shear test. Journal of Terramechanics, 107, 47–59. doi: https://doi.org/10.1016/j.jterra.2023.03.003

9. Fan, C. C., Huang, R., Hwang, H., & Chao, S. J. (2016). Properties of concrete incorporating fine recycled aggregates from crushed concrete wastes. Construction and Building Materials, 112, 708–715. doi: http://dx.doi.org/10.1016/j.conbuildmat.2016.02.154

10. Geotechnical investigation and testing — Laboratory testing of soil — Part 10: Direct shear tests,  ISO 17892-10:2018 (2018).

11. Geotechnical investigation and testing — Laboratory testing of soil — Part 12: Determination of liquid and plastic limits, ISO 17892-12:2018 (2018).

12. Geotechnical investigation and testing — Laboratory testing of soil — Part 4: Determination of particle size distribution, ISO 17892-4:2023 (2023).

13. Kaptan, K., Cunha, S., & Aguiar, J. (2024). A review: Construction and demolition waste as a novel source for CO₂ reduction in Portland cement production for concrete. Sustainability, 16(2), 585. doi: https://doi.org/10.3390/su16020585

14. Kerni, V., Sonthwal, V. K., & Jan, U. (2015). Review on stabilization of clayey soil using fines obtained from demolished concrete structures. International Journal of Innovative Research in Science, Engineering and Technology, 4(5), 296–299. Retrieved from https://www.ijirset.com/upload/2015/may/106_Review.pdf

15. Leon, L. P., Roopnarine, K., Azamathulla, H. M., Chadee, A. A., & Rathnayake, U. (2023 а). A Performance-Based Design Framework for Enhanced Asphalt Concrete in the Caribbean Region. Buildings, 13(7), 1661. doi: https://doi.org/10.3390/buildings13071661

16. Leon, L. P., Smith, J., & Frank, A. (2023 b). Intermediate temperature fracture resistance of stone matrix asphalt containing untreated recycled concrete aggregate. The Baltic Journal of Road and Bridge Engineering18(1), 94-121. doi: https://doi.org/10.7250/bjrbe.2023-18.590

17. Leon, L. P. (2024) Effects of Quarry and Recycled Concrete Waste as Rapid Use Stabilizers for Clay Soils. 22nd LACCEI International Multi-Conference for Engineering, Education, and Technology: Sustainable Engineering for a Diverse, Equitable, and Inclusive Future at the Service of Education, Research, and Industry for a Society 5.0. Hybrid Event, San Jose – COSTA RICA, July 17 - 19, 2024. doi: https://doi.org/10.18687/LACCEI2024.1.1.1618

18. Mark, L., Brandon, V., Halsey, L., Gloe, R., & Olomi, M. (2016). Use of Recycled Crushed Concrete (RCC) Fines for Potential Soil Stabilization. Nebraska Department of Transportation: Research Reports. Retrieved from https://digitalcommons.unl.edu/cgi/viewcontent.cgi?article=1233&context=...

19. Natsionalna ekonomichna stratehiia na period do 2030 roku: Postanova Kabinetu Ministriv Ukrayiny 2021, № 202 (2021).

20. Motor roads—Guidelines on pavement construction using stabilized soils, DSTU 8801:2018. (2018).

21. Novytskyi, Y., Topylko, N., & Rainchuk, N. (2023). Valorization of phosphogypsum in Ukraine by creating composite materials for structural layers of road pavement. Environmental Problems, 8(4), 247-255. doi: https://doi.org/10.23939/ep2023.04.247

22. Pasquier, L. C., Kemache, N., Mocellin, J., Blais, J. F., & Mercier, G. (2018). Waste concrete valorization; aggregates and mineral carbonation feedstock production. Geosciences, 8(9), 342. doi: https://doi.org/10.3390/geosciences8090342

23. Peys, A., Valentini, L., Baral, A., Babaahmadi, A., Perumal, P., Davolio, M., & Hanein, T. (2025). Opening Letter of RILEM TC UMW: Upcycling Powder Mineral Wastes into Cement Matrices — Challenges and Opportunities. RILEM Technical Letters, 10, 33-43. doi: https://doi.org/10.21809/rilemtechlett.2025.210

24. Sharma, N. K., Swain, S. K., & Sahoo, U. C. (2012). Stabilization of a clayey soil with fly ash and lime: A micro level investigation. Geotechnical and Geological Engineering, 30(5), 1197–1205. doi: https://doi.org/10.1007/s10706-012-9532-3

25. Singh, L., Singh, S., & Gill, K. (2017). Improvement in CBR value of soil using waste concrete fines. International Journal of Science Technology & Engineering, 3(09). Retrieved from https://www.ijste.org/articles/IJSTEV3I9001.pdf

26. Stefanow, D., & Dudziński, P. A. (2021). Soil shear strength determination methods – State of the art. Soil and Tillage Research, 208, 104881. doi: https://doi.org/10.1016/j.still.2020.104881

27. Standardization and normalization systems in construction—Clay raw materials for production of ceramic building materials,  DSTU 8801:2018 (2018).

28. S3RoU Project description. (2024). University of Leeds.. Retrieved from https://engineering.leeds.ac.uk/S3RoU

29. Ujile, M. C., & Abbey, S. J. (2022). The use of fine portions from construction and demolition waste for expansive soil stabilization: A review. Frontiers of Structural and Civil Engineering, 16(7), 803–816. doi: https://doi.org/10.1007/s11709-022-0835-z

30. Unbound and hydraulically bound mixtures – Part 2: Test methods for laboratory reference density and water content – Proctor compaction, EN 13286-2:2010 (2010).

31. United Nations Development Programme (UNDP Ukraine). (2023). Construction and demolition waste management in Ukraine. Retrieved from https://www.undp.org/ukraine/united-nations-development-programme-ukraine-recovery-framework

32. Venkatarama Reddy, B. V., & Latha, M. S. (2014). Influence of soil grading on the characteristics of cement stabilised soil compacts. Materials and structures47(10), 1633-1645. doi: https://doi.org/10.1617/s11527-013-0142-1

33. Zhao, Y., Gao, Y., Zhang, Y., & Jia, Y. (2019). Effect of fines on the drying crack resistance of composite soil stabiliser-stabilised gravel soil. Road Materials and Pavement Design, 20(6), 1255–1274. doi: https://doi.org/10.1080/14680629.2018.1439766